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Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties

Cemented arthroplasty is a common process to fix prostheses when a patient becomes older and his/her bone quality deteriorates. The applied cements are biocompatible, can transfer loads, and dampen vibrations, but do not provide antibacterial protection. The present work is aimed at the development...

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Autores principales: Świeczko-Żurek, Beata, Zieliński, Andrzej, Bociąga, Dorota, Rosińska, Karolina, Gajowiec, Grzegorz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911740/
https://www.ncbi.nlm.nih.gov/pubmed/35269220
http://dx.doi.org/10.3390/nano12050732
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author Świeczko-Żurek, Beata
Zieliński, Andrzej
Bociąga, Dorota
Rosińska, Karolina
Gajowiec, Grzegorz
author_facet Świeczko-Żurek, Beata
Zieliński, Andrzej
Bociąga, Dorota
Rosińska, Karolina
Gajowiec, Grzegorz
author_sort Świeczko-Żurek, Beata
collection PubMed
description Cemented arthroplasty is a common process to fix prostheses when a patient becomes older and his/her bone quality deteriorates. The applied cements are biocompatible, can transfer loads, and dampen vibrations, but do not provide antibacterial protection. The present work is aimed at the development of cement with antibacterial effectivity achieved with the implementation of nanoparticles of different metals. The powders of Ag, Cu with particles size in a range of 10–30 nm (Cu10) and 70–100 nm (Cu70), AgCu, and Ni were added to PMMA cement. Their influence on compression strength, wettability, and antibacterial properties of cement was assessed. The surface topography of samples was examined with biological and scanning electron microscopy. The mechanical properties were determined by compression tests. A contact angle was observed with a goniometer. The biological tests included an assessment of cytotoxicity (XTT test on human cells Saos-2 line) and bacteria viability exposure (6 months). The cements with Ag and Cu nanopowders were free of bacteria. For AgCu and Ni nanoparticles, the bacterial solution became denser over time and, after 6 months, the bacteria clustered into conglomerates, creating a biofilm. All metal powders in their native form in direct contact reduce the number of eukaryotic cells. Cell viability is the least limited by Ag and Cu particles of smaller size. All samples demonstrated hydrophobic nature in the wettability test. The mechanical strength was not significantly affected by the additions of metal powders. The nanometal particles incorporated in PMMA-based bone cement can introduce long-term resistance against bacteria, not resulting in any serious deterioration of compression strength.
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spelling pubmed-89117402022-03-11 Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties Świeczko-Żurek, Beata Zieliński, Andrzej Bociąga, Dorota Rosińska, Karolina Gajowiec, Grzegorz Nanomaterials (Basel) Article Cemented arthroplasty is a common process to fix prostheses when a patient becomes older and his/her bone quality deteriorates. The applied cements are biocompatible, can transfer loads, and dampen vibrations, but do not provide antibacterial protection. The present work is aimed at the development of cement with antibacterial effectivity achieved with the implementation of nanoparticles of different metals. The powders of Ag, Cu with particles size in a range of 10–30 nm (Cu10) and 70–100 nm (Cu70), AgCu, and Ni were added to PMMA cement. Their influence on compression strength, wettability, and antibacterial properties of cement was assessed. The surface topography of samples was examined with biological and scanning electron microscopy. The mechanical properties were determined by compression tests. A contact angle was observed with a goniometer. The biological tests included an assessment of cytotoxicity (XTT test on human cells Saos-2 line) and bacteria viability exposure (6 months). The cements with Ag and Cu nanopowders were free of bacteria. For AgCu and Ni nanoparticles, the bacterial solution became denser over time and, after 6 months, the bacteria clustered into conglomerates, creating a biofilm. All metal powders in their native form in direct contact reduce the number of eukaryotic cells. Cell viability is the least limited by Ag and Cu particles of smaller size. All samples demonstrated hydrophobic nature in the wettability test. The mechanical strength was not significantly affected by the additions of metal powders. The nanometal particles incorporated in PMMA-based bone cement can introduce long-term resistance against bacteria, not resulting in any serious deterioration of compression strength. MDPI 2022-02-22 /pmc/articles/PMC8911740/ /pubmed/35269220 http://dx.doi.org/10.3390/nano12050732 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Świeczko-Żurek, Beata
Zieliński, Andrzej
Bociąga, Dorota
Rosińska, Karolina
Gajowiec, Grzegorz
Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties
title Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties
title_full Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties
title_fullStr Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties
title_full_unstemmed Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties
title_short Influence of Different Nanometals Implemented in PMMA Bone Cement on Biological and Mechanical Properties
title_sort influence of different nanometals implemented in pmma bone cement on biological and mechanical properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911740/
https://www.ncbi.nlm.nih.gov/pubmed/35269220
http://dx.doi.org/10.3390/nano12050732
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